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Stefan Brandl
Stefan Brandl
Johannes Kepler University, Institute for Computational Perception
Bestätigte E-Mail-Adresse bei jku.at
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Zitiert von
Zitiert von
Jahr
Investigating gender fairness of recommendation algorithms in the music domain
AB Melchiorre, N Rekabsaz, E Parada-Cabaleiro, S Brandl, O Lesota, ...
Information Processing & Management 58 (5), 102666, 2021
1072021
Analyzing item popularity bias of music recommender systems: are different genders equally affected?
O Lesota, A Melchiorre, N Rekabsaz, S Brandl, D Kowald, E Lex, ...
Proceedings of the 15th ACM Conference on Recommender Systems, 601-606, 2021
522021
LFM-2b: A dataset of enriched music listening events for recommender systems research and fairness analysis
M Schedl, S Brandl, O Lesota, E Parada-Cabaleiro, D Penz, N Rekabsaz
Proceedings of the 2022 Conference on Human Information Interaction and …, 2022
342022
Exploring Cross-group Discrepancies in Calibrated Popularity for Accuracy/Fairness Trade-off Optimization.
O Lesota, S Brandl, M Wenzel, AB Melchiorre, E Lex, N Rekabsaz, ...
MORS@ RecSys, 2022
52022
Traces of Globalization in Online Music Consumption Patterns and Results of Recommendation Algorithms.
O Lesota, E Parada-Cabaleiro, S Brandl, E Lex, N Rekabsaz, M Schedl
ISMIR, 291-297, 2022
22022
Song lyrics have become simpler and more repetitive over the last five decades
E Parada-Cabaleiro, M Mayerl, S Brandl, M Skowron, M Schedl, E Lex, ...
Scientific Reports 14 (1), 5531, 2024
2024
Verse versus Chorus: Structure-aware Feature Extraction for Lyrics-based Genre Recognition.
M Mayerl, S Brandl, G Specht, M Schedl, E Zangerle
ISMIR, 884-890, 2022
2022
INTERACTIVELY EXPLORING SIMILARITIES BETWEEN MUSIC GENRES BASED ON USER-GENERATED TAGS
S Brandl, M Schedl
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